Take the 2-minute tour ×
Stack Overflow is a question and answer site for professional and enthusiast programmers. It's 100% free.

I have an input like the following

[a href=http://twitter.com/suddentwilight][font][b][i]@suddentwilight[/font][/a] My POV: Rakhi Sawant hits below the belt & does anything for attention... [a href=http://twitter.com/mallikaLA][b]http://www.test.com[/b][/a] has maintained the grace/decency :)

Now I need to get the string @suddentwilight and http://www.test.com that comes inside the anchor tags. there might be some [b] or [i] like tags wrapping the actual text. I need to ignore that.

Basically I need to get a string matching that starts with [a] then need to get the string/url before closing of the a tag [/a].

Please Suggest

share|improve this question
    
Why the downvote? –  Paolo Tedesco Jul 28 '09 at 5:31

1 Answer 1

I don't know C#, but here's a regex:

/\[a\s+[^\]]*\](?:\[[^\]]+\])*(.*?)(?:\[[^\]]+\])*\[\/a\]/

This will match [a ...][tag1][tag2][...][tagN]text[/tagN]...[tag2][tag1][/a] and capture text.

To explain:

  • the /.../ are common regex delimiters (like double quotes for strings). C# may just use strings to initialize regexes - in which case the forward slashes aren't necessary.
  • \[ and \] match a literal [ and ] character. We need to escape them with a backslash since square brackets have a special meaning in regexes.
  • [^\]] is an example of a character class - here meaning any character that is not a close square bracket. The square brackets delimit the character class, the caret (^) denotes negation, and the escaped close square bracket is the character being negated.
  • * and + are suffixes meaning match 0 or more and 1 or more of the previous pattern, respectively. So [^\]]* means match 0 or more of anything except a close square bracket.
  • \s is a shorthand for the character class of whitespace characters
  • (?:...) allows you to group the contents into an atomic pattern.
  • (...) groups like (?:...) does, but also saves the substring that this portion of the regex matches into a variable. This is normally called a capture, since it captures this portion of the string for you to use later. Here, we are using a capture to grab the linktext.
  • . matches any single character.
  • *? is a suffix for non-greedy matching. Normally, the * suffix is greedy, and matches as much as it can while still allowing the rest of the pattern to match something. *? is the opposite - it matches as little as it can while still allowing the rest of the pattern to match something. The reason we use *? here instead of * is so that if we have multiple [/a]s on a line, we only go as far as the next one when matching link text.

This will only remove [tag]s that come at the beginning and end of the text, to remove any that come in the middle of the text (like [a href=""]a [b]big[/b] frog[/a]), you'll need to do a second pass on the capture from the first, scrubbing out any text that matches:

/\[[^\]]+\]/
share|improve this answer
    
Nope this expression dosent seems to be working for me :(. It returns empty string as output. –  Tanmoy Jul 28 '09 at 4:54
    
Which method are you using the regex with? One that requires that the regex match the entire string, or one that requires that the regex only match a substring? C# has both. –  rampion Jul 28 '09 at 4:58
    
i am using: var output = Regex.Match(input, pattern); –  Tanmoy Jul 28 '09 at 5:00
    
ok now here is the diffrence: When i put forward slashes / in pattern it returns empty string but pattern without forward slashes returns [a href=twitter.com/suddentwilight][font][b][i]@suddentwilight[/font][/a] however i just want @suddentwilight from the output. I want to exlcude the string we are using to match the pattern. –  Tanmoy Jul 28 '09 at 5:06
    
Like I said above - try removing the / delimiters - C# doesn't use them. The text should be in output.Captures(1) on success. –  rampion Jul 28 '09 at 5:06

Your Answer

 
discard

By posting your answer, you agree to the privacy policy and terms of service.

Not the answer you're looking for? Browse other questions tagged or ask your own question.